Claims
- 1. An energy efficient apparatus for varying the temperature of a metallic workpiece, said apparatus comprising:
- a housing including a vacuum seal,
- a workpiece support within the housing,
- means for evacuating the interior of the housing,
- an infrared reflective envelope within the housing disposed to reflect radiation emitted from a hot workpiece on said support back to the workpiece, said envelope comprising an infrared reflective surface and means for dissipating heat, and
- means for heating a workpiece located on said workpiece support.
- 2. The apparatus of claim 1 further comprising a shield having high emissivity surfaces disposed to protect the reflective envelope from matter ejected by a workpiece on said support.
- 3. The apparatus of claim 2 wherein said means for evacuating the housing includes a port which communicates with the space between the workpiece and the shield.
- 4. The apparatus of claim 1 useful as an improved soaking pit wherein said means for dissipating heat comprises a cooling fluid circulating loop in thermal communication with said envelope, whereby a hot, radiating ingot placed on said support may be cooled at a controlled rate as a fraction of the radiation emitted therefrom is absorbed into said envelope.
- 5. The apparatus of claim 1 useful as an improved soaking pit, said apparatus further comprising means separate from said envelope for absorbing a fraction of the radiation emitted by a workpiece, said absorbing means comprising a fluid cooled body having a high emissivity surface located inwardly of said envelope.
- 6. The apparatus of claim 1 useful as an improved soaking pit wherein said means for dissipating heat comprises a high emissivity surface on the side of said envelope opposite said infrared reflective surface.
- 7. The apparatus of claim 1 useful as an improved soaking pit wherein said means for heating comprises means for passing alternating current through a surface layer of said workpiece.
- 8. The apparatus of claim 1 useful as an energy efficient furnace for heating a workpiece wherein the housing is separated from the envelope, the envelope is made of magnetic field permeable material, and said heating means comprises a magnetic induction coil within said housing and surrounding said envelope and means for passing an electric current through said workpiece, said furnace being operable to heat a workpiece located on said support by magnetic induction or electrical resistance and to reflect radiation emitted from the workpiece at the reflective surface of said envelope back to the workpiece.
- 9. An improved soaking pit for cooling a hot, radiating metallic ingot or the like at a controlled rate, said soaking pit comprising:
- a housing including a vacuum seal;
- means for evacuating the interior of the housing;
- an ingot support within the housing;
- means for absorbing radiation emitted from an ingot on said support and for reflecting radiation back thereto; and
- means for controlling the fraction of radiation absorbed by said absorbing means so that the net radiative energy loss from said ingot can be controlled to result in a selected cooling rate.
- 10. The soaking pit of claim 9 wherein said control means comprises:
- means for passing an electric current through an ingot located on said support;
- means for passing cooling fluids through said radiation absorbing means to control its emissivity; and
- means for monitoring the temperature of said ingot.
- 11. The soaking pit of claim 9 wherein said radiation absorbing means comprises a fluid cooled structure having a high emissivity surface disposed inwardly of said radiation reflecting means.
- 12. The soaking pit of claim 9 further comprising means for passing an electric current through an ingot located on said support.
- 13. The soaking pit of claim 12 wherein said means for passing an electric current comprises means for passing high frequency alternating current so that resistive heating of the ingot is confined essentially to a surface layer thereof.
- 14. The soaking pit of claim 9 wherein said means for absorbing radiation emitted from the ingot on said support and for reflecting radiation back thereto comprises an infrared reflective envelope having integral means for dissipating heat.
- 15. An energy efficient furnace for heating metallic workpieces, said furnace comprising:
- an envelope of magnetic field permeable material defining a chamber, said envelope having an interior infrared reflective surface and cooling means for removing heat therefrom;
- a workpiece support located in said chamber;
- vacuum producing means for evacuating said chamber;
- a magnetic induction coil surrounding said envelope; and
- a housing about the induction coil,
- said furnace being operable to heat a workpiece located on said support in a low pressure environment and to reflect infrared radiation emitted from the workpiece at the interior surface of said envelope back to said workpiece.
- 16. The surface of claim 15 wherein said housing includes a vacuum seal and the vacuum producing means is operable to evacuate the space on both sides of the envelope.
- 17. The furnace of claim 15 further comprising a magnetic field permeable protective shield spaced inwardly from said envelope for protecting the interior infrared reflective surface.
- 18. The furnace of claim 15 wherein said induction coil is cooled.
- 19. The furnace of claim 18 wherein said induction coil is cooled to a temperature at which the coil behaves as a superconductor.
- 20. The furnace of claim 18 wherein the interior surface of the housing and the exterior surface of the envelope comprise low emissivity material.
- 21. The furnace of claim 18 wherein cooled, magnetic field permeable, radiative baffles are interposed between the induction coil and the envelope.
- 22. The furnace of claim 15 wherein the envelope cooling means comprises a heat conductive substrate defining a plurality of passageways for channeling cooling fluid.
- 23. A process for cooling a hot, radiating metallic ingot or the like at a controlled rate comprising the steps of:
- placing the ingot in an enclosure;
- evacuating the enclosure to minimize convective heat losses and to minimize ingot surface chemical reactions;
- reflecting radiation emitted by the ingot back thereto, and
- controlling the amount of emitted radiation which is reflected back to the ingot by absorbing a fraction of the emitted radiation as heat so that the net ingot radiative loss results in cooling at a controlled rate.
- 24. The process of claim 23 wherein the reflecting step is effected by providing an infrared reflective envelope about the ingot and wherein said envelope absorbs a fractions of the emitted radiation in excess of the amount required to result in a selected cooling rate, said process comprising the additional step of heating a surface layer of the ingot to decrease the net heat loss.
- 25. The process of claim 24 wherein the heating step is effected by passing an electric current through the ingot.
- 26. The process of claim 25 wherein the electric current employed is a high frequency alternating current whereby resistance heating in the ingot is confined essentially to a surface layer thereof.
- 27. The process of claim 23 wherein the amount of radiation reflected back to the ingot is diminished by absorbing a portion of the emitted radiation into a temperature controlled structure.
- 28. The process of claim 27 wherein the temperature controlled structure comprises a fluid-cooled, infrared reflective envelope about the ingot.
- 29. The process of claim 27 wherein the temperature controlled structure comprises a fluid cooled body having a high emissivity surface.
- 30. The process of claim 23 comprising the further step of providing a thin layer of protective material of high emissivity about the ingot.
- 31. A process for cooling a hot, radiating metallic ingot or the like at a selected rate, said process comprising the steps of:
- placing the ingot in an enclosure,
- evacuating the enclosure to minimize heat losses by convection and to minimize ingot surface chemical reactions,
- providing means for reflecting a selected portion of the radiation emitted from the ingot back to the ingot and means for passing an electric current through the ingot; and
- controlling the net rate of emission of radiation from the ingot by adjusting the amount of radiation reflected back thereto and the magnitude of the current passed therethrough during cooling to result in a selected ingot cooling rate.
- 32. The process of claim 31 wherein the current is adjusted to zero.
- 33. The process of claim 31 wherein the current is alternating current of a frequency suitable to confine current flow and resulting resistance heating substantially to a surface layer of the ingot.
- 34. The process of claim 31 wherein said means for reflecting a selected portion of the emitted radiation comprises an infrared reflective envelope having a reflectivity no less than 80% and a temperature controlled mass into which radiation is absorbed as heat.
- 35. A process for heating an electrically conductive workpiece comprising the steps of:
- A. treating the surface of the workpiece to remove volatile materials;
- B. placing the workpiece in an enclosure having an interior infrared reflective surface;
- C. evacuating the enclosure;
- D. heating the workpiece to induce the emission of infrared radiation therefrom; and
- E. allowing the radiation to be reflected at the interior surface and directed back to the workpiece.
- 36. The process of claim 35 wherein the workpiece is heated by magnetic induction using a magnetic induction coil located outside said enclosure.
- 37. The process of claim 35 wherein the workpiece is heated by direct electrical resistance.
- 38. A process for heating an electrically conductive workpiece comprising the step of:
- A. placing the workpiece in an enclosure having an interior infrared reflective surface;
- B. interposing a layer of protective material between the workpiece and the interior surface;
- C. evacuating the enclosure;
- D. heating the workpiece to induce the emission of infrared radiation therefrom;
- E. allowing the workpiece and the layer to attain thermal equilibrium by radiative transfer; and
- F. allowing radiation to be reflected at the interior surface and directed back toward the workpiece.
- 39. The process of claim 38 wherein the layer comprises screen material so that matter ejected from the surface of the workpiece via spalling is intercepted thereby and a portion of the radiation emitted by said workpiece passes therethrough.
- 40. The process of claim 38 wherein the layer comprises a metal foil.
- 41. The process of claim 38 wherein the workpiece is heated by magnetic induction using a magnetic induction coil located outside said enclosure.
- 42. The process of claim 38 wherein the workpiece is heated by direct electrical resistance.
REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of copending applications Ser. Nos. 898,289, filed Apr. 20, 1978 abandoned and 934,025, abandoned, filed Aug. 16, 1978, the disclosures of which are incorporated herein by reference.
US Referenced Citations (7)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
898289 |
Apr 1978 |
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